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WO2011054069A1 - System and method for correcting the rotation direction of a two-pole motor applied to a two-way pump - Google Patents

System and method for correcting the rotation direction of a two-pole motor applied to a two-way pump Download PDF

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Publication number
WO2011054069A1
WO2011054069A1 PCT/BR2010/000362 BR2010000362W WO2011054069A1 WO 2011054069 A1 WO2011054069 A1 WO 2011054069A1 BR 2010000362 W BR2010000362 W BR 2010000362W WO 2011054069 A1 WO2011054069 A1 WO 2011054069A1
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WO
WIPO (PCT)
Prior art keywords
pump
rotation direction
engine
identification
pole
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/BR2010/000362
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French (fr)
Inventor
Cirilo Alex Cavalli
Johninson Imhoff
Marcelo Piekarski
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Electrolux do Brasil SA
Original Assignee
Electrolux do Brasil SA
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Electrolux do Brasil SA filed Critical Electrolux do Brasil SA
Publication of WO2011054069A1 publication Critical patent/WO2011054069A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D15/00Control, e.g. regulation, of pumps, pumping installations or systems
    • F04D15/0066Control, e.g. regulation, of pumps, pumping installations or systems by changing the speed, e.g. of the driving engine

Definitions

  • the present invention relates to the field of electromechanical engineering, more specifically, electromechanical devices, commonly known by household appliances, specifically a system comprising a pump coupled to a synchronous two-pole motor and a method of identification and correction of the direction of the associated rotation applied to washing machines.
  • the rotation from electrical motors is the base mechanism for many household appliances. At times, this rotation movement is obvious, as in fans or cake mixers, but often remains somewhat disguised, as in the agitators of washing machines or electric windows from the windows of some cars, by being hidden in the operation mechanism of such equipment.
  • Electrical motors are encountered in the most various shapes and dimensions, each appropriated to its respective task and function to which is intended.
  • the motor rotor needs an initial torque to begin running.
  • Such torque also known as momentum, is commonly produced by magnetic forces developed between the magnetic poles of the rotor and the stator ones.
  • Attraction or repulsion forces developed between the stator and rotor, pull or push the moving poles of the rotor, producing torque, which makes the rotor to spin faster and faster, until the friction or loads connected to the shaft reduce torque, reaching a minimum value of the resultant force. At this point, the rotor spins with a constant angular speed, maintaining the spin.
  • Both the rotor and the stator of the motor must be magnetic, as they are the forces between the poles that produce the torque required to spin the rotor.
  • the rotor is a permanent magnet that spins between two stationary electromagnets. As the electromagnets are powered by alternating current, their poles reverse their polarity as the direction of the current also reverses. Thus, the rotor spins when its north pole is pulled firstly to a first electromagnet, south, and pushed by a second electromagnet - north. Each time the rotor north pole is about to reach the south pole of a stationary electromagnet, the current reverses and such south pole becomes a north pole, alternating the forces that 'push' and 'pull' the rotor.
  • the rotors keeps spinning continuously, ending a turn to each cycle of the alternating current. As it rotates perfectly synchronized with the reversals of alternating current, this motor is called synchronous electric motor of alternating current. This process can be better understood by looking at Figure 1.
  • the water pumps motors with an inlet and an outlet, applied to washing machines, for example, are this type.
  • the water pumps used in washing machines are designed to implement this fluid drainage during washing and often are used to recirculate the liquid, i.e. move continuously the water that is present in the bottom of the machine to the top.
  • One of them is the use of a regular pump, coupled to a flow directing valve.
  • Another one, less common, is to use a pump with an inlet and an outlet, also known as Y pump, which uses an outlet for drainage and other for recirculation.
  • Y pump which uses an outlet for drainage and other for recirculation.
  • the engine used for this purpose has over two poles, and may thus create a displacement of the rotor in less than 180 °, allowing, with this shorter displacement, to force a specific rotational direction to the shaft.
  • the drawback of such engines is its constructive complexity, a fact which leads to a higher cost.
  • the water pumps motors commonly used in washing machines, have only two poles, and can thus align the poles in only two points, in an angle of 180 degrees between them. This precludes the creation of an efficacious control to assign the direction of rotation of the motor.
  • These engines are used in a pump with an inlet and an outlet, no matter in which direction, as for any of the directions the water is pumped to the same outlet.
  • the invention US4091644, from April 08, 1977, relates to a reversible turbine pump that allows the selective fluid flow in two different directions.
  • This document presents a pump with an inlet and two outlets, however without defining a method associated to perceive the rotation direction of the motor.
  • the document US5493745 describes a washing machine that recirculates and frains water by means of a reversible pump and two valves of two-way that determine the fluid flow pumped, for recirculation or for flow.
  • the patent GB 1218724 from March 02, 1968 relates to a pump associated to a rotor, preferably of two poles, without commutation and whose rotor is mounted in a sealed chamber of a pump and having position sensors that receive the permanent magnet position to control de commutation circuit, however, the document does not advances the application of this motor in a "Y" pump having an inlet and two outlets.
  • the invention WO 2007/053042 describes a washing machine with recirculation, highlighting a speed control, even though it refers to a three- phase motor applied to a two-outlet pump.
  • This invention describes a system and a method for identifying and correcting the rotation direction of a synchronous motor that drives a two- way pump applied to washing machines, such a method that allows the use of a more cost effective motor in washing machines.
  • the speed control of the motor also provides more accuracy to the process, preventing water wastes.
  • the solutions uses a two-pole motor associated to an innovating method to detect the rotation direction and speed control of the motor, thus reducing costs because of the simplified construction of such motors.
  • the speed control step of the motor prevents the unnecessary flow of water, avoiding waste.
  • the solution also features a system equipped with a pump with an inlet and two outlets, supplied with sensors and two-pole single phased motor driven using the proposed method, providing a constructive simplicity and therefore a lower cost.
  • the system also contemplates an electro-electronic circuit supplied with a microprocessor programmed with reference values. Description of drawings
  • Figure 1 reveals an operation scheme of synchronous two-pole motors, where can be identified the iron cores (6) that influence the permanent magnet (7) fixed to a central shaft (8) in order to spin freely when the power source (9) of alternating current actuates.
  • Figure 2 reveals a schematic upper perspective view of the pump with its components: inlet duct of liquids (1), outlet duct for recirculation (2), discharge duct (3), valve (4), propellant (5) and motor (1 1).
  • Figure 3 reveals a schematic upper perspective view of the Y pump with its components: inlet duct of liquids (1), outlet duct for recirculation (2), discharge duct (3), valve (4), propellant (5) and motor (1 1).
  • Figure 4 provides a schematic view of the Y pump application (10) in a washing machine, highlighting a recirculation duct (12), discharge duct
  • Figure 5 demonstrates the synchronous motor rotation direction correction method workflow.
  • Figure 6 shows a speed control method workflow, applied consecutively to the rotation direction correction method.
  • This invention relates to a system comprised by an electro-electronic circuit (not illustrated), means of detection of the motor rotation direction (11) and a synchronous two-way pump (10), also known as Y pump, supplied with a two-pole single-phased motor (1 1), associated to a method for identifying and correcting the rotation direction of the propellant (5).
  • the pump (10) is commonly applied to washing machines aiming at the discharge to one of the ways of the Y pump (10) and recirculation to another way of the same Y pump (10).
  • the propellant (5) moves, driving the liquid inserted through the inlet duct (1) to the outlet, which could be through the outlet duct for recirculation (2) or through the discharge duct (3), separated physically through the valve (4) that directs the liquid flow according to the rotation direction of the rotor (5).
  • the two-pole motor (11) spins in any and unpredictable direction.
  • Specific sensors allocated in any positions where they can perceive the rotation direction like, for instance, in outlets (2 and 3) of the Y pump (10), at the pump housing (10), at the rotor shaft, at the propellant or even on the pump wall (10), associated to a specific computer application, perceive the rotation direction driven to the propellant (5). If the spin direction of the propellant (5) is perceived by the sensor as the direction reverse to the programmed at the machine, the voltage supplied to the motor (1 1) is stopped, preventing the operation of the Y pump (10). Then, a new charge is applied to the motor (1 1), resuming the process from the beginning, repeatedly, until the spin rotation is according the programming of the washing machine. If the direction is according the one previously adjusted in the machine, the pump (10) runs correctly.
  • the method can be briefly summed up by the following steps: power supply to the motor (1 1); the sensor perceives the rotation direction of the motor (10) and checks if the direction is the equal to the one programmed at the washing machine. If not, it stops the power supply and restarts the cycle. If so, it continues the operation according to the programming of the washing machine.
  • the method is clarified by the logic workflow of the method shown in Figure 5.
  • This first embodiment defines a method simplified for detecting and correcting the rotation direction of a Y pump (10), applicable to any pumps for detecting the rotation direction.
  • the described method uses an electro-electronic system (not illustrated), comprised by sensors and a digital electronic set, controlled by a microprocessor, which has an application previously defined for such functions, with the reference values, which runs the whole method functioning logic, connected to actuators that make the interface with the motor (1 1) of the pump (10).
  • an electro-electronic system (not illustrated), comprised by sensors and a digital electronic set, controlled by a microprocessor, which has an application previously defined for such functions, with the reference values, which runs the whole method functioning logic, connected to actuators that make the interface with the motor (1 1) of the pump (10).
  • the method previously approached incorporates the speed control of the rotation of the motor (11) and consequently the water flow control driven by the Y pump (10).
  • This speed control of the motor (1 1) of the pump (10) avoids water wastes, since, by previously identifying the rotation direction, prevents the unnecessary water flow.
  • the application operation can be briefly described as follows: request water flow through a duct (12 or 13); turn the pump on (10) at low rotation and check if the rotation direction is correct. If not, turn the pump off (10), wait the water to return and restart the cycle. If so, increase speed of the pump (10) in order to enter the water flow range and indicate to the application that the position is proper to run the flow.
  • the operation of the speed control can be better understood by looking at Figure 6.
  • the method allows a constant reading of the motor (11) in order to allow the perception of the rotation continuity, aiming at identifying the operation outage due to the entry of strange bodies in the pump (10) or to the loss of synchronism of the pump (10), thus, identifying if the pump (10) is operating correctly.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Control Of Non-Positive-Displacement Pumps (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)

Abstract

System and method for identifying and correcting the direction of rotation of a two-pole single-phased motor (10) combined with a two-way pump (10), applied in washing machines, used for identification and correction of the rotation of the propellant (5) according to the selected programming to a washing machine also allowing to control the rotation speed of said pump (10).

Description

DESCRIPTIVE REPORT
SYSTEM AND METHOD FOR CORRECTING THE ROTATION DIRECTION OF A
TWO-POLE MOTOR APPLIED TO A TWO-WAY PUMP Field of the invention
The present invention relates to the field of electromechanical engineering, more specifically, electromechanical devices, commonly known by household appliances, specifically a system comprising a pump coupled to a synchronous two-pole motor and a method of identification and correction of the direction of the associated rotation applied to washing machines.
Background of the invention
The rotation from electrical motors is the base mechanism for many household appliances. At times, this rotation movement is obvious, as in fans or cake mixers, but often remains somewhat disguised, as in the agitators of washing machines or electric windows from the windows of some cars, by being hidden in the operation mechanism of such equipment. Electrical motors are encountered in the most various shapes and dimensions, each appropriated to its respective task and function to which is intended. The motor rotor needs an initial torque to begin running. Such torque, also known as momentum, is commonly produced by magnetic forces developed between the magnetic poles of the rotor and the stator ones. Attraction or repulsion forces, developed between the stator and rotor, pull or push the moving poles of the rotor, producing torque, which makes the rotor to spin faster and faster, until the friction or loads connected to the shaft reduce torque, reaching a minimum value of the resultant force. At this point, the rotor spins with a constant angular speed, maintaining the spin.
Both the rotor and the stator of the motor must be magnetic, as they are the forces between the poles that produce the torque required to spin the rotor. The rotor is a permanent magnet that spins between two stationary electromagnets. As the electromagnets are powered by alternating current, their poles reverse their polarity as the direction of the current also reverses. Thus, the rotor spins when its north pole is pulled firstly to a first electromagnet, south, and pushed by a second electromagnet - north. Each time the rotor north pole is about to reach the south pole of a stationary electromagnet, the current reverses and such south pole becomes a north pole, alternating the forces that 'push' and 'pull' the rotor. The rotors keeps spinning continuously, ending a turn to each cycle of the alternating current. As it rotates perfectly synchronized with the reversals of alternating current, this motor is called synchronous electric motor of alternating current. This process can be better understood by looking at Figure 1. The water pumps motors with an inlet and an outlet, applied to washing machines, for example, are this type.
The water pumps used in washing machines are designed to implement this fluid drainage during washing and often are used to recirculate the liquid, i.e. move continuously the water that is present in the bottom of the machine to the top. There are ways to improve the drainage and recirculation operation, avoiding the use of two water pumps. One of them is the use of a regular pump, coupled to a flow directing valve. Another one, less common, is to use a pump with an inlet and an outlet, also known as Y pump, which uses an outlet for drainage and other for recirculation. Through the rotation direction control of the pump, one can control the direction of water flow to one of the mentioned outputs. Typically, the engine used for this purpose has over two poles, and may thus create a displacement of the rotor in less than 180 °, allowing, with this shorter displacement, to force a specific rotational direction to the shaft. The drawback of such engines is its constructive complexity, a fact which leads to a higher cost. The water pumps motors, commonly used in washing machines, have only two poles, and can thus align the poles in only two points, in an angle of 180 degrees between them. This precludes the creation of an efficacious control to assign the direction of rotation of the motor. These engines are used in a pump with an inlet and an outlet, no matter in which direction, as for any of the directions the water is pumped to the same outlet.
The drawback resides in the fact of how to control a pump that has two outlets with a simplified operation, in which is not possible to control the initial direction of rotation. There is no economical and simple solution known to combine these processes. It is necessary to know which way the rotor is spinning, because in some pumps there may be an element of derivation (commonly called flap) that switches according to the rotation of the rotor.
In order to solve this problem we have developed a system powered by a two-pole single-phase motor, applied to a two-way pump, commonly applied to the discharge of washing machines, combined with a method of identifying and correcting the rotation direction.
Analysis of the state of the art
The patent US3773432, from July 13, 1971 describes a bi-directional turbine pump for selective fluid flow through two different discharges, depending on the direction of rotation of the propeller. This document presents a pump with an inlet and two outlets, however without defining a method associated to perceive the rotation direction of the motor.
The invention US4091644, from April 08, 1977, relates to a reversible turbine pump that allows the selective fluid flow in two different directions. This document presents a pump with an inlet and two outlets, however without defining a method associated to perceive the rotation direction of the motor.
The document US5493745 describes a washing machine that recirculates and frains water by means of a reversible pump and two valves of two-way that determine the fluid flow pumped, for recirculation or for flow.
The patent GB 1218724 from March 02, 1968 relates to a pump associated to a rotor, preferably of two poles, without commutation and whose rotor is mounted in a sealed chamber of a pump and having position sensors that receive the permanent magnet position to control de commutation circuit, however, the document does not advances the application of this motor in a "Y" pump having an inlet and two outlets.
The invention WO 2007/053042 describes a washing machine with recirculation, highlighting a speed control, even though it refers to a three- phase motor applied to a two-outlet pump.
Brief description of the invention
This invention describes a system and a method for identifying and correcting the rotation direction of a synchronous motor that drives a two- way pump applied to washing machines, such a method that allows the use of a more cost effective motor in washing machines. The speed control of the motor also provides more accuracy to the process, preventing water wastes.
The solutions uses a two-pole motor associated to an innovating method to detect the rotation direction and speed control of the motor, thus reducing costs because of the simplified construction of such motors.
Additionally, the speed control step of the motor prevents the unnecessary flow of water, avoiding waste.
The solution also features a system equipped with a pump with an inlet and two outlets, supplied with sensors and two-pole single phased motor driven using the proposed method, providing a constructive simplicity and therefore a lower cost. The system also contemplates an electro-electronic circuit supplied with a microprocessor programmed with reference values. Description of drawings
Figure 1 reveals an operation scheme of synchronous two-pole motors, where can be identified the iron cores (6) that influence the permanent magnet (7) fixed to a central shaft (8) in order to spin freely when the power source (9) of alternating current actuates.
Figure 2 reveals a schematic upper perspective view of the pump with its components: inlet duct of liquids (1), outlet duct for recirculation (2), discharge duct (3), valve (4), propellant (5) and motor (1 1).
Figure 3 reveals a schematic upper perspective view of the Y pump with its components: inlet duct of liquids (1), outlet duct for recirculation (2), discharge duct (3), valve (4), propellant (5) and motor (1 1).
Figure 4 provides a schematic view of the Y pump application (10) in a washing machine, highlighting a recirculation duct (12), discharge duct
(13) and cleaning liquid (14).
Figure 5 demonstrates the synchronous motor rotation direction correction method workflow.
Figure 6 shows a speed control method workflow, applied consecutively to the rotation direction correction method.
Detailed description of the invention
This invention relates to a system comprised by an electro-electronic circuit (not illustrated), means of detection of the motor rotation direction (11) and a synchronous two-way pump (10), also known as Y pump, supplied with a two-pole single-phased motor (1 1), associated to a method for identifying and correcting the rotation direction of the propellant (5).
The pump (10) is commonly applied to washing machines aiming at the discharge to one of the ways of the Y pump (10) and recirculation to another way of the same Y pump (10).
Thus, when the pump is actuated (10), the propellant (5) moves, driving the liquid inserted through the inlet duct (1) to the outlet, which could be through the outlet duct for recirculation (2) or through the discharge duct (3), separated physically through the valve (4) that directs the liquid flow according to the rotation direction of the rotor (5).
When the pump is activated (10), the two-pole motor (11) spins in any and unpredictable direction. Specific sensors allocated in any positions where they can perceive the rotation direction, like, for instance, in outlets (2 and 3) of the Y pump (10), at the pump housing (10), at the rotor shaft, at the propellant or even on the pump wall (10), associated to a specific computer application, perceive the rotation direction driven to the propellant (5). If the spin direction of the propellant (5) is perceived by the sensor as the direction reverse to the programmed at the machine, the voltage supplied to the motor (1 1) is stopped, preventing the operation of the Y pump (10). Then, a new charge is applied to the motor (1 1), resuming the process from the beginning, repeatedly, until the spin rotation is according the programming of the washing machine. If the direction is according the one previously adjusted in the machine, the pump (10) runs correctly.
The method can be briefly summed up by the following steps: power supply to the motor (1 1); the sensor perceives the rotation direction of the motor (10) and checks if the direction is the equal to the one programmed at the washing machine. If not, it stops the power supply and restarts the cycle. If so, it continues the operation according to the programming of the washing machine. The method is clarified by the logic workflow of the method shown in Figure 5.
This first embodiment defines a method simplified for detecting and correcting the rotation direction of a Y pump (10), applicable to any pumps for detecting the rotation direction.
In a preferred embodiment, the described method uses an electro-electronic system (not illustrated), comprised by sensors and a digital electronic set, controlled by a microprocessor, which has an application previously defined for such functions, with the reference values, which runs the whole method functioning logic, connected to actuators that make the interface with the motor (1 1) of the pump (10).
In an additional embodiment, the method previously approached incorporates the speed control of the rotation of the motor (11) and consequently the water flow control driven by the Y pump (10). This speed control of the motor (1 1) of the pump (10) avoids water wastes, since, by previously identifying the rotation direction, prevents the unnecessary water flow.
The application operation can be briefly described as follows: request water flow through a duct (12 or 13); turn the pump on (10) at low rotation and check if the rotation direction is correct. If not, turn the pump off (10), wait the water to return and restart the cycle. If so, increase speed of the pump (10) in order to enter the water flow range and indicate to the application that the position is proper to run the flow. The operation of the speed control can be better understood by looking at Figure 6.
During the detection step of the rotation direction, the flow of the Y pump (10) is insufficient to cause the water to flow, since the pressure created by the pump (10) is smaller to the water column in the ducts, but sufficient to allow the detection of the rotation direction. Figure 4 clarifies the pump position (10) in relation to ducts and heights of the column of water.
Alternatively, one can use only the speed control of the rotation direction, without using the speed control of the propellant (5).
Additionally, the method allows a constant reading of the motor (11) in order to allow the perception of the rotation continuity, aiming at identifying the operation outage due to the entry of strange bodies in the pump (10) or to the loss of synchronism of the pump (10), thus, identifying if the pump (10) is operating correctly.
This invention is not limited to the representations mentioned or illustrated here, and it has to be understood in its wide scope. Many changes and other representations of the invention will come in mind of the one adept to the technique to which this invention belongs, having the benefit of the precept presented at previous descriptions and attached drawings. Further, it has to be understood that the invention is not limited to the revealed specific shape, and that the changes and other shapes are understood as enclosed within the scope of the attached claims. Although specific terms are nominated here, they are only used in a generic and descriptive form and not with a limiting purpose.

Claims

1 / 2 CLAIMSSYSTEM AND METHOD FOR CORRECTING THE ROTATION DIRECTION OF A TWO-POLE MOTOR APPLIED TO A TWO-WAY PUMP
1. Method for identification and correction of the rotation direction of a two-pole engine applied to a pump with one intake and two outtakes, characterized by the identification and correction of the rotation direction of the impeller (5) of such pump (10) through the analysis of the information from sensors that perceive the rotation direction of such impeller (5) and by the interruption in the voltage supply to such two-pole engine (11) when such rotation direction is different from that programmed in the machine, retaking the process repeatedly until the spinning direction is in accordance with the programming of the washing machine.
2. Method for identification and correction of the rotation direction of a two-pole engine applied to a pump with one intake and two outtakes, according to claim 1, characterized by having the following stages: power supply to the engine (1 1); analysis of the information of the rotation direction of the engine (1 1), sent by the sensor; verification of the rotation direction in relation to the program of the washing machine; if negative, interruption of the power supply and restart of the cycle; if positive, continuance of the operation as programmed by the washing machine.
3. Method for controlling the rotation speed of a two-pole engine applied to a dual pump characterized by having the following stages: request water flow through duct; connect the pump (10) at low rotation; verify the rotation direction in relation to what is aimed; if negative, switch the pump (10) off, waiting for the water to return and restart the cycle; if positive, accelerate the rotation of the pump (10) until the water flow regimen is constant. 2 / 2
4. Method for controlling the rotation speed of a two-pole engine applied to a dual pump, according to any of claims 1 to 3, characterized by having means of identification of loss of synchronism of the engine (1 1) through the reading and operation of the engine (1 1).
5. System for the identification and correction of the rotation direction of a two-pole engine applied to a pump with one intake and two outtakes, characterized by having a pump (10) physically provided with an intake (1) and two outtakes (2 and 3) coupled to a two-pole engine (1 1), single phase, means of identification of the rotation direction of such engine (1 1), and a electro-electronic circuit connected to such engine (1 1) and to such means of identification, provided with a microprocessor programmed with reference values for operation control.
6. System for the identification and correction of the rotation direction of a two-pole engine applied to a pump with one intake and two outtakes, according to claim 5, characterized by having means of identification of the engine (1 1) synchronism, through the reading of the rotation of the engine (1 1).
7. System for the identification and correction of the rotation direction of a two-pole engine applied to a pump with one intake and two outtakes, according to claim 5, characterized by having a impeller (5) with variable rotation speed.
PCT/BR2010/000362 2009-11-04 2010-11-04 System and method for correcting the rotation direction of a two-pole motor applied to a two-way pump Ceased WO2011054069A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
BRPI0904776-0A BRPI0904776A2 (en) 2009-11-04 2009-11-04 System and method for correcting the direction of rotation of a two-pole motor applied to a two-way pump
BRPI0904776-0 2009-11-04

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Publication Number Publication Date
WO2011054069A1 true WO2011054069A1 (en) 2011-05-12

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Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1218724A (en) 1968-03-02 1971-01-13 Siemens Ag Pumps driven by direct current motors
GB1237604A (en) * 1968-01-22 1971-06-30 Crouzet Sa A device for selecting the direction of rotation of a synchronous electric motor
US3773432A (en) 1971-07-13 1973-11-20 Westinghouse Electric Corp Single stage bi-directional pump
US4091644A (en) 1977-04-08 1978-05-30 General Electric Company Turbine pump
US5493745A (en) 1994-12-29 1996-02-27 Whirlpool Corporation Recirculation pump system for a washing machine
DE102005011732A1 (en) * 2004-12-15 2006-07-20 Aweco Appliance Systems Gmbh & Co. Kg Household appliance used as dishwasher, washing machine or drinks machine, comprises pump for conveying liquids and pump drive formed as single phase synchronous motor
WO2007053042A2 (en) 2005-11-04 2007-05-10 Fisher & Paykel Appliances Limited Washing machine pump control for water drainage, ventilation, dislodging blockage and recirculation

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1237604A (en) * 1968-01-22 1971-06-30 Crouzet Sa A device for selecting the direction of rotation of a synchronous electric motor
GB1218724A (en) 1968-03-02 1971-01-13 Siemens Ag Pumps driven by direct current motors
US3773432A (en) 1971-07-13 1973-11-20 Westinghouse Electric Corp Single stage bi-directional pump
US4091644A (en) 1977-04-08 1978-05-30 General Electric Company Turbine pump
US5493745A (en) 1994-12-29 1996-02-27 Whirlpool Corporation Recirculation pump system for a washing machine
DE102005011732A1 (en) * 2004-12-15 2006-07-20 Aweco Appliance Systems Gmbh & Co. Kg Household appliance used as dishwasher, washing machine or drinks machine, comprises pump for conveying liquids and pump drive formed as single phase synchronous motor
WO2007053042A2 (en) 2005-11-04 2007-05-10 Fisher & Paykel Appliances Limited Washing machine pump control for water drainage, ventilation, dislodging blockage and recirculation

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